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Numerical simulation of black powder removal process in natural gas pipeline based on jetting pig

机译:基于喷射猪的天然气管道中黑色粉末去除过程的数值模拟

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摘要

Black powder is a common contamination problem for natural gas pipeline all over the world. In this study, a method based on the jetting pig is proposed to remove the black powder in natural gas pipeline. Numeric simulations based on the computational fluid dynamics method, were conducted to investigate the dynamic migration process of black powder particles in the jetting field by using the multiphase flow model. Diameter of black powder particles, initial stacking concentration, stacking height and the inlet pipeline pressure were taken into consideration to study the black powders jetting cleaning effect. By using discrete phase model, considering the coupling between solid and gas, the path of black powder with different diameters was traced, and the movements of black powder in horizontal and vertical directions were analyzed, which reflect the diffusion law of black powder. Our results show that the higher the initial stacking concentration and larger the particle diameter, the lower the cleaning efficiency of black powder. The horizontal position of black powder with particle diameter of 20?μm were obviously ahead of other kinds of particle, and the horizontal velocity decreased slowly. The vertical velocity of black powder with particle diameter of 20?μm were also obviously lower than other kinds of particle. While other five kinds of particle with particle diameter over 20?μm would gradually stick to the wall until they stop moving and secondary settlement will occur. Our results can contribute to the mechanical design of jetting pig and optimal design of pigging process for black powder cleaning in natural gas pipeline.
机译:黑色粉末是世界各地天然气管道的常见污染问题。在该研究中,提出了一种基于喷射猪的方法,以在天然气管道中除去黑色粉末。通过使用多相流动模型进行基于计算流体动力学方法的基于计算流体动力学方法的数值模拟。考虑了黑色粉末颗粒的直径,初始堆叠浓度,堆叠高度和入口管道压力,以研究黑粉喷射清洁效果。通过使用离散相位模型,考虑到固体和气体之间的耦合,追踪具有不同直径的黑色粉末的路径,分析了水平和垂直方向的黑色粉末的运动,反映了黑色粉末的扩散规律。我们的结果表明,初始堆叠浓度越高,粒径越大,黑色粉末的清洁效率越低。黑色粉末的水平位置具有20μm的粒径为20Ωμm,显然在其他种类的颗粒前后显着,水平速度缓慢降低。粒径为20μm的黑色粉末的垂直速度也明显低于其他种类的颗粒。虽然其他五种粒径超过20Ωμm的粒子会逐渐粘在墙壁上,直到它们停止移动,并且发生二次沉降。我们的结果可以有助于采用喷射猪的机械设计和天然气管道黑色粉末清洁过程的最优设计。

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